Minimal Paths for Tubular Structure Segmentation With Coherence Penalty and Adaptive Anisotropy

被引:22
作者
Chen, Da [1 ,2 ]
Zhang, Jiong [3 ]
Cohen, Laurent D. [1 ]
机构
[1] Paris Dauphine Univ, PSL Res Univ, CEREMADE, CNRS,UMR 7534, F-75016 Paris, France
[2] Ctr Hosp Natl Ophtalmol Quinze Vingts, F-75012 Paris, France
[3] Univ Southern Calif, Keck Sch Med, USC Stevens Neuroimaging & Informat Inst, Lab Neuro Imaging, Los Angeles, CA 90033 USA
关键词
Geodesic; appearance feature coherence; adaptive anisotropy; dynamic metric; tubular structure segmentation; VASCULAR SEGMENTATION; VESSEL SEGMENTATION; GLOBAL MINIMUM; EDGE-DETECTION; EXTRACTION; CURVES; IMAGES; 2D; ALGORITHMS; TRACKING;
D O I
10.1109/TIP.2018.2874282
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
The minimal path method has proven to be particularly useful and efficient in tubular structure segmentation applications. In this paper, we propose a new minimal path model associated with a dynamic Riemannian metric embedded with an appearance feature coherence penalty and an adaptive anisotropy enhancement term. The features that characterize the appearance and anisotropy properties of a tubular structure are extracted through the associated orientation score. The proposed the dynamic Riemannian metric is updated in the course of the geodesic distance computation carried out by the efficient single-pass fast marching method. Compared to the state-of-the-art minimal path models, the proposed minimal path model is able to extract the desired tubular structures from a complicated vessel tree structure. In addition, we propose an efficient prior path-based method to search for vessel radius value at each centerline position of the target. Finally, we perform the numerical experiments on both synthetic and real images. The quantitive validation is carried out on retinal vessel images. The results indicate that the proposed model indeed achieves a promising performance.
引用
收藏
页码:1271 / 1284
页数:14
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